基于杜鹃滤波器的远程病人监护网络安全高效的隐私保护认证方案

Shafika Showkat Moni, Deepti Gupta
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引用次数: 2

摘要

随着智能医疗设备和系统的普及,远程患者监护(RPM)网络在现代医疗保健系统中的潜力正在不断发展。医疗专业人员(医生、护士或医学专家)可以通过RPM网络访问患者的生命体征和敏感生理信息,并提供适当的治疗以提高生活质量。然而,RPM网络中通信的无线特性使得设计一种有效的安全通信机制具有挑战性。为了保证RPM网络的安全性,近年来提出了许多认证方案。医疗物联网(IoMT)使用假名、数字签名和认证密钥交换(AKE)协议来开发安全授权和保护隐私的通信。但是,由于在医院云服务器上维护大量密钥对或假名结果,传统身份验证协议面临开销挑战。在这项研究工作中,我们发现了这一研究缺口,并提出了一种新的安全高效的基于杜鹃滤波器的RPM网络隐私保护认证方案。在我们提出的方案中,杜鹃过滤器的使用为医疗专业人员和患者之间的相互匿名认证和秘密共享密钥建立过程提供了一种有效的方法。此外,我们使用基于相关性的异常检测模型来识别行为不端的传感器节点,以建立安全通信。使用SPAN和AVISPA工具进行的安全性分析和正式安全性验证表明,我们提出的方案对消息修改攻击、重放攻击和中间人攻击具有鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Secure and Efficient Privacy-preserving Authentication Scheme using Cuckoo Filter in Remote Patient Monitoring Network
With the ubiquitous advancement in smart medical devices and systems, the potential of Remote Patient Monitoring (RPM) network is evolving in modern healthcare systems. The medical professionals (doctors, nurses, or medical experts) can access vitals and sensitive physiological information about the patients and provide proper treatment to improve the quality of life through the RPM network. However, the wireless nature of communication in the RPM network makes it challenging to design an efficient mechanism for secure communication. Many authentication schemes have been proposed in recent years to ensure the security of the RPM network. Pseudonym, digital signature, and Authenticated Key Exchange (AKE) protocols are used for the Internet of Medical Things (IoMT) to develop secure authorization and privacy-preserving communication. However, traditional authentication protocols face overhead challenges due to maintaining a large set of key-pairs or pseudonyms results on the hospital cloud server. In this research work, we identify this research gap and propose a novel secure and efficient privacy-preserving authentication scheme using cuckoo filters for the RPM network. The use of cuckoo filters in our proposed scheme provides an efficient way for mutual anonymous authentication and a secret shared key establishment process between medical professionals and patients. Moreover, we identify the misbehaving sensor nodes using a correlation-based anomaly detection model to establish secure communication. The security analysis and formal security validation using SPAN and AVISPA tools show the robustness of our proposed scheme against message modification attacks, replay attacks, and man-in-the-middle attacks.
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